Microbe-Derived Indole Metabolite Demonstrates Potent Multidrug Efflux Pump Inhibition in Staphylococcus aureus
Rushikesh Tambat1, Manoj Jangra1, Nisha Mahey1
1Clinical Microbiology and Bioactive Screening Laboratory, CSIR - Institute of Microbial Technology, Chandigarh, India.
Abstract:
Efflux pumps are always at the forefront of bacterial multidrug resistance and account for the failure of antibiotics. The present study explored the potential of 2-(2-Aminophenyl) indole (RP2), an efflux pump inhibitor (EPI) isolated from the soil bacterium, to overcome the efflux-mediated resistance in Staphylococcus aureus. The RP2/antibiotic combination was tested against efflux pump over-expressed S. aureus strains. The compound was further examined for the ethidium bromide (EtBr) uptake and efflux inhibition assay (a hallmark of EPI functionality) and cytoplasmic membrane depolarization. The safety profile of RP2 was investigated using in vitro cytotoxicity assay and Ca2+ channel inhibitory effect. The in vivo efficacy of RP2 was studied in an animal model in combination with ciprofloxacin. RP2 exhibited the synergistic activity with several antibiotics in efflux pump over-expressed strains of S. aureus. In the mechanistic experiments, RP2 increased the accumulation of EtBr, and demonstrated the inhibition of its efflux. The antibiotic-EPI combinations resulted in extended post antibiotic effects as well as a decrease in mutation prevention concentration of antibiotics. Additionally, the in silico docking studies suggested the binding of RP2 to the active site of modeled structure of NorA efflux pump. The compound displayed low mammalian cytotoxicity and had no Ca2+ channel inhibitory effect. In ex vivo experiments, RP2 reduced the intracellular invasion of S. aureus in macrophages. Furthermore, the RP2/ciprofloxacin combination demonstrated remarkable efficacy in a murine thigh infection model. In conclusion, RP2 represents a promising candidate as bacterial EPI, which can be used in the form of a novel therapeutic regimen along with existing and upcoming antibiotics, for the eradication of S. aureus infections.
Insights
This study shows that 2-(2-Aminophenyl) indole (RP2), a novel efflux pump inhibitor (EPI), can overcome antibiotic resistance in Staphylococcus aureus. RP2 in combination with antibiotics demonstrated significant efficacy against bacterial infections.
Area of Science:
- Microbiology
- Pharmacology
- Biochemistry
Background:
- Bacterial multidrug resistance, driven by efflux pumps, leads to antibiotic treatment failure.
- Staphylococcus aureus exhibits significant efflux pump-mediated resistance, necessitating novel therapeutic strategies.
Purpose of the Study:
- To investigate the potential of 2-(2-Aminophenyl) indole (RP2) as an efflux pump inhibitor (EPI) against Staphylococcus aureus.
- To evaluate the efficacy and safety of RP2 in combination with antibiotics for treating S. aureus infections.
Main Methods:
- Testing RP2/antibiotic combinations against efflux pump over-expressed S. aureus strains.
- Assessing RP2's mechanism of action via ethidium bromide (EtBr) uptake/efflux assays and membrane depolarization.
- Evaluating RP2's in vitro cytotoxicity, Ca2+ channel inhibition, ex vivo macrophage invasion, and in vivo efficacy in a murine thigh infection model.
Main Results:
- RP2 demonstrated synergistic activity with antibiotics against resistant S. aureus strains.
- RP2 increased EtBr accumulation, indicating efflux pump inhibition, and showed low mammalian cytotoxicity.
- RP2/ciprofloxacin combination exhibited significant efficacy in a murine thigh infection model, reducing bacterial burden.
Conclusions:
- RP2 is a promising bacterial efflux pump inhibitor (EPI) with potential to restore antibiotic efficacy.
- RP2 can be developed into a novel therapeutic regimen to combat Staphylococcus aureus infections, particularly those mediated by efflux pumps.
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